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An experimental study of the unsteady vortex structures in the wake of a root-fixed flapping wing

机译:根部固定扑翼后非定常涡旋结构的实验研究

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摘要

An experimental study was conducted to characterize the evolution of the unsteady vortex structures in the wake of a root-fixed flapping wing with the wing size, stroke amplitude, and flapping frequency within the range of insect characteristics for the development of novel insect-sized nano-air-vehicles (NAVs). The experiments were conducted in a low-speed wing tunnel with a miniaturized piezoelectric wing (i.e., chord length, C = 12.7 mm) flapping at a frequency of 60 Hz (i.e., f = 60 Hz). The non-dimensional parameters of the flapping wing are chord Reynolds number of Re = 1,200, reduced frequency of k = 3.5, and non-dimensional flapping amplitude at wingtip h = A/C = 1.35. The corresponding Strouhal number (Str) is 0.33, which is well within the optimal range of 0.2 < Str < 0.4 used by flying insects and birds and swimming fishes for locomotion. A digital particle image velocimetry (PIV) system was used to achieve phased-locked and time-averaged flow field measurements to quantify the transient behavior of the wake vortices in relation to the positions of the flapping wing during the upstroke and down stroke flapping cycles. The characteristics of the wake vortex structures in the chordwise cross planes at different wingspan locations were compared quantitatively to elucidate underlying physics for a better understanding of the unsteady aerodynamics of flapping flight and to explore/optimize design paradigms for the development of novel insect-sized, flapping-wing-based NAVs.
机译:进行了一项实验研究,以表征昆虫固定范围内的根部固定扑翼的非定常涡旋结构的演变,该翅翼的大小,冲程幅度和扑动频率均在昆虫特征范围内,以开发新型昆虫尺寸纳米空中车辆(NAV)。实验是在低速机翼隧道中进行的,该机翼以60 Hz(即f = 60 Hz)的频率拍打着压电翼(即弦长,C = 12.7 mm)。襟翼的无量纲参数是Re的弦雷诺数= 1,200,降低的频率k = 3.5和翼尖处的无量纲拍幅h = A / C = 1.35。相应的斯特劳哈尔数(Str)为0.33,这恰好在飞行昆虫和鸟类以及游泳鱼类用于运动的0.2

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